-
1
-
-
76049099304
-
The crystal structure of apo-FtsH reveals domain movements necessary for substrate unfolding and translocation
-
Bieniossek C, Niederhauser B, Baumann UM (2009) The crystal structure of apo-FtsH reveals domain movements necessary for substrate unfolding and translocation. Proc Natl Acad Sci U S A 106(51):21579-21584
-
(2009)
Proc Natl Acad Sci U S A
, vol.106
, Issue.51
, pp. 21579-21584
-
-
Bieniossek, C.1
Niederhauser, B.2
Baumann, U.M.3
-
2
-
-
0036054289
-
The crystal structure of the AAA domain of the ATP-dependent protease FtsH of Escherichia coli at 1.5 A resolution
-
Krzywda S, Brzozowski AM, Verma C, Karata K (2002) The crystal structure of the AAA domain of the ATP-dependent protease FtsH of Escherichia coli at 1.5 A resolution. Structure 10(8):1073-1083
-
(2002)
Structure
, vol.10
, Issue.8
, pp. 1073-1083
-
-
Krzywda, S.1
Brzozowski, A.M.2
Verma, C.3
Karata, K.4
-
3
-
-
84855198122
-
Structure and function of the bacterial AAA protease FtsH
-
Langklotz S, Baumann U, Narberhaus F (2012) Structure and function of the bacterial AAA protease FtsH. Biochim Biophys Acta 1823(1):40-48
-
(2012)
Biochim Biophys Acta
, vol.1823
, Issue.1
, pp. 40-48
-
-
Langklotz, S.1
Baumann, U.2
Narberhaus, F.3
-
4
-
-
84884859692
-
FtsH protease
-
Rawlings ND, Salvesen G (eds) 3rd edn. Elsevier
-
Ogura T, Okuno T, Suno R, Akiyama Y (2013) FtsH protease. In: Rawlings ND, Salvesen G (eds) Handbook of Proteolytic Enzymes, 3rd edn. Elsevier, pp 685-692
-
(2013)
Handbook of Proteolytic Enzymes
, pp. 685-692
-
-
Ogura, T.1
Okuno, T.2
Suno, R.3
Akiyama, Y.4
-
5
-
-
84884883401
-
FtsH protease, a eubacterial membrane-bound AAA protease
-
Kutejova E (ed) Research Signport
-
Okuno T, Ogura T (2008) FtsH protease, a eubacterial membrane-bound AAA protease. In: Kutejova E (ed) ATP-Dependent Proteases, Research Signport, pp 87-114
-
(2008)
ATP-Dependent Proteases
, pp. 87-114
-
-
Okuno, T.1
Ogura, T.2
-
6
-
-
33744552902
-
Structure of the whole cytosolic region of ATP-dependent protease FtsH
-
Suno R, Niwa H, Tsuchiya D, Zhang X et al (2006) Structure of the whole cytosolic region of ATP-dependent protease FtsH. Mol Cell 22(5):575-585
-
(2006)
Mol Cell
, vol.22
, Issue.5
, pp. 575-585
-
-
Suno, R.1
Niwa, H.2
Tsuchiya, D.3
Zhang, X.4
-
7
-
-
0034079766
-
FtsH recognizes proteins with unfolded structure and hydrolyzes the carboxyl side of hydrophobic residues
-
Asahara Y, Atsuta K, Motohashi K, Taguchi H et al (2000) FtsH recognizes proteins with unfolded structure and hydrolyzes the carboxyl side of hydrophobic residues. J Biochem 127(5):931-937
-
(2000)
J Biochem
, vol.127
, Issue.5
, pp. 931-937
-
-
Asahara, Y.1
Atsuta, K.2
Motohashi, K.3
Taguchi, H.4
-
8
-
-
84855240784
-
Mitochondrial AAA proteases - towards a molecular understanding of membrane-bound proteolytic machines
-
Gerdes F, Tatsuta T, Langer T (2012) Mitochondrial AAA proteases - towards a molecular understanding of membrane-bound proteolytic machines. Biochim Biophys Acta 1823(1):49-55
-
(2012)
Biochim Biophys Acta
, vol.1823
, Issue.1
, pp. 49-55
-
-
Gerdes, F.1
Tatsuta, T.2
Langer, T.3
-
9
-
-
77956375190
-
Recent advances in understanding the assembly and repair of photosystem II
-
Nixon PJ, Michoux F, Yu J, Boehm M et al (2010) Recent advances in understanding the assembly and repair of photosystem II. Ann Bot 106(1):1-16
-
(2010)
Ann Bot
, vol.106
, Issue.1
, pp. 1-16
-
-
Nixon, P.J.1
Michoux, F.2
Yu, J.3
Boehm, M.4
-
10
-
-
33744970020
-
Translating m-AAA protease function in mitochondria to hereditary spastic paraplegia
-
Rugarli EI, Langer T (2006) Translating m-AAA protease function in mitochondria to hereditary spastic paraplegia. Trends Mol Med 12(6):262-269
-
(2006)
Trends Mol Med
, vol.12
, Issue.6
, pp. 262-269
-
-
Rugarli, E.I.1
Langer, T.2
-
11
-
-
33745645551
-
Protein degradation machineries in plastids
-
Sakamoto W (2006) Protein degradation machineries in plastids. Annu Rev Plant Biol 57:599-621
-
(2006)
Annu Rev Plant Biol
, vol.57
, pp. 599-621
-
-
Sakamoto, W.1
-
12
-
-
0028985616
-
Degradation of sigma 32, the heat shock regulator in Escherichia coli, is governed by Hfl B
-
Herman C, Thevenet D, D'Ari R, Bouloc P (1995) Degradation of sigma 32, the heat shock regulator in Escherichia coli, is governed by Hfl B. Proc Natl Acad Sci U S A 92(8):3516-3520
-
(1995)
Proc Natl Acad Sci U S A
, vol.92
, Issue.8
, pp. 3516-3520
-
-
Herman, C.1
Thevenet, D.2
D'Ari, R.3
Bouloc, P.4
-
13
-
-
0029060112
-
Escherichia coli FtsH is a membrane- bound, ATP-dependent protease which degrades the heat-shock transcription factor sigma 32
-
Tomoyasu T, Gamer J, Bukau B, Kanemori M et al (1995) Escherichia coli FtsH is a membrane- bound, ATP-dependent protease which degrades the heat-shock transcription factor sigma 32. EMBO J 14(11):2551-2560
-
(1995)
EMBO J
, vol.14
, Issue.11
, pp. 2551-2560
-
-
Tomoyasu, T.1
Gamer, J.2
Bukau, B.3
Kanemori, M.4
-
14
-
-
57449104565
-
Region C of the Escherichia coli heat shock sigma factor RpoH (sigma 32) contains a turnover element for proteolysis by the FtsH protease
-
Obrist M, Langklotz S, Milek S, Fuhrer F et al (2009) Region C of the Escherichia coli heat shock sigma factor RpoH (sigma 32) contains a turnover element for proteolysis by the FtsH protease. FEMS Microbiol Lett 290(2):199-208
-
(2009)
FEMS Microbiol Lett
, vol.290
, Issue.2
, pp. 199-208
-
-
Obrist, M.1
Langklotz, S.2
Milek, S.3
Fuhrer, F.4
-
15
-
-
34547918032
-
Region 2.1 of the Escherichia coli heat-shock sigma factor RpoH (sigma32) is necessary but not suf ficient for degradation by the FtsH protease
-
Obrist M, Milek S, Klauck E, Hengge R (2007) Region 2.1 of the Escherichia coli heat-shock sigma factor RpoH (sigma32) is necessary but not suf ficient for degradation by the FtsH protease. Microbiology 153(8):2560-2571
-
(2007)
Microbiology
, vol.153
, Issue.8
, pp. 2560-2571
-
-
Obrist, M.1
Milek, S.2
Klauck, E.3
Hengge, R.4
-
16
-
-
18944378454
-
Identi fication of a turnover element in region 2.1 of Escherichia coli sigma32 by a bacterial one-hybrid approach
-
Obrist M, Narberhaus F (2005) Identi fication of a turnover element in region 2.1 of Escherichia coli sigma32 by a bacterial one-hybrid approach. J Bacteriol 187(11):3807-3813
-
(2005)
J Bacteriol
, vol.187
, Issue.11
, pp. 3807-3813
-
-
Obrist, M.1
Narberhaus, F.2
-
17
-
-
55249108963
-
Molecular basis for regulation of the heat shock transcription factor sigma32 by the DnaK and DnaJ chaperones
-
Rodriguez F, Arsene-Ploetze F, Rist W, Rudiger S et al (2008) Molecular basis for regulation of the heat shock transcription factor sigma32 by the DnaK and DnaJ chaperones. Mol Cell 32(3):347-358
-
(2008)
Mol Cell
, vol.32
, Issue.3
, pp. 347-358
-
-
Rodriguez, F.1
Arsene-Ploetze, F.2
Rist, W.3
Rudiger, S.4
-
18
-
-
1642333987
-
Spectrometric analysis of degradation of a physiological substrate sigma32 by Escherichia coli AAA protease FtsH
-
Okuno T, Yamada-Inagawa T, Karata K, Yamanaka K et al (2004) Spectrometric analysis of degradation of a physiological substrate sigma32 by Escherichia coli AAA protease FtsH. J Struct Biol 146(1-2):148-154
-
(2004)
J Struct Biol
, vol.146
, Issue.1-2
, pp. 148-154
-
-
Okuno, T.1
Yamada-Inagawa, T.2
Karata, K.3
Yamanaka, K.4
-
19
-
-
0034046020
-
The SsrA-SmpB system for protein tagging, directed degradation and ribosome rescue
-
Karzai AW, Roche ED, Sauer RT (2000) The SsrA-SmpB system for protein tagging, directed degradation and ribosome rescue. Nat Struct Biol 7(6):449-455
-
(2000)
Nat Struct Biol
, vol.7
, Issue.6
, pp. 449-455
-
-
Karzai, A.W.1
Roche, E.D.2
Sauer, R.T.3
-
20
-
-
53149091681
-
Turnover of endogenous SsrA-tagged proteins mediated by ATPdependent proteases in Escherichia coli
-
Lies M, Maurizi MR (2008) Turnover of endogenous SsrA-tagged proteins mediated by ATPdependent proteases in Escherichia coli. J Biol Chem 283(34):22918-22929
-
(2008)
J Biol Chem
, vol.283
, Issue.34
, pp. 22918-22929
-
-
Lies, M.1
Maurizi, M.R.2
-
21
-
-
84881533533
-
Machines of destruction - AAA+ proteases and the adaptors that control them
-
Dougan DA (ed) Springer, Subcell Biochem
-
Gur E, Ottofuelling R, Dougan DA (2013) Machines of destruction - AAA+ proteases and the adaptors that control them. In: Dougan DA (ed) Regulated proteolysis in microorganisms. Springer, Subcell Biochem 66:3-33
-
(2013)
Regulated proteolysis in microorganisms
, vol.66
, pp. 3-33
-
-
Gur, E.1
Ottofuelling, R.2
Dougan, D.A.3
-
22
-
-
2642666491
-
Degradation of carboxy-terminaltagged cytoplasmic proteins by the Escherichia coli protease H fl B (FtsH)
-
Herman C, Thevenet D, Bouloc P, Walker GC et al (1998) Degradation of carboxy-terminaltagged cytoplasmic proteins by the Escherichia coli protease H fl B (FtsH). Genes Dev 12(9):1348-1355
-
(1998)
Genes Dev
, vol.12
, Issue.9
, pp. 1348-1355
-
-
Herman, C.1
Thevenet, D.2
Bouloc, P.3
Walker, G.C.4
-
23
-
-
0030577385
-
Subunit a of proton ATPase F0 sector is a substrate of the FtsH protease in Escherichia coli
-
Akiyama Y, Kihara A, Ito K (1996) Subunit a of proton ATPase F0 sector is a substrate of the FtsH protease in Escherichia coli. FEBS Lett 399(1-2):26-28
-
(1996)
FEBS Lett
, vol.399
, Issue.1-2
, pp. 26-28
-
-
Akiyama, Y.1
Kihara, A.2
Ito, K.3
-
24
-
-
0029989855
-
FtsH (H fl B) is an ATP-dependent protease selectively acting on SecY and some other membrane proteins
-
Akiyama Y, Kihara A, Tokuda H, Ito K (1996) FtsH (H fl B) is an ATP-dependent protease selectively acting on SecY and some other membrane proteins. J Biol Chem 271(49): 31196-31201
-
(1996)
J Biol Chem
, vol.271
, Issue.49
, pp. 31196-31201
-
-
Akiyama, Y.1
Kihara, A.2
Tokuda, H.3
Ito, K.4
-
25
-
-
68449090734
-
Effects of antibiotics and a proto-oncogene homolog on destruction of protein translocator SecY
-
van Stelten J, Silva F, Belin D, Silhavy TJ (2009) Effects of antibiotics and a proto-oncogene homolog on destruction of protein translocator SecY. Science 325(5941):753-756
-
(2009)
Science
, vol.325
, Issue.5941
, pp. 753-756
-
-
van Stelten, J.1
Silva, F.2
Belin, D.3
Silhavy, T.J.4
-
26
-
-
0036720126
-
Membrane protein degradation by FtsH can be initiated from either end
-
Chiba S, Akiyama Y, Ito K (2002) Membrane protein degradation by FtsH can be initiated from either end. J Bacteriol 184(17):4775-4782
-
(2002)
J Bacteriol
, vol.184
, Issue.17
, pp. 4775-4782
-
-
Chiba, S.1
Akiyama, Y.2
Ito, K.3
-
27
-
-
0034231476
-
Length recognition at the N-terminal tail for the initiation of FtsH-mediated proteolysis
-
Chiba S, Akiyama Y, Mori H, Matsuo E et al (2000) Length recognition at the N-terminal tail for the initiation of FtsH-mediated proteolysis. EMBO Rep 1(1):47-52
-
(2000)
EMBO Rep
, vol.1
, Issue.1
, pp. 47-52
-
-
Chiba, S.1
Akiyama, Y.2
Mori, H.3
Matsuo, E.4
-
28
-
-
0033153237
-
Dislocation of membrane proteins in FtsH-mediated proteolysis
-
Kihara A, Akiyama Y, Ito K (1999) Dislocation of membrane proteins in FtsH-mediated proteolysis. EMBO J 18(11):2970-2981
-
(1999)
EMBO J
, vol.18
, Issue.11
, pp. 2970-2981
-
-
Kihara, A.1
Akiyama, Y.2
Ito, K.3
-
29
-
-
0035985049
-
The Cpx stress response system of Escherichia coli senses plasma membrane proteins and controls HtpX, a membrane protease with a cytosolic active site
-
Shimohata N, Chiba S, Saikawa N, Ito K et al (2002) The Cpx stress response system of Escherichia coli senses plasma membrane proteins and controls HtpX, a membrane protease with a cytosolic active site. Genes Cells 7(7):653-662
-
(2002)
Genes Cells
, vol.7
, Issue.7
, pp. 653-662
-
-
Shimohata, N.1
Chiba, S.2
Saikawa, N.3
Ito, K.4
-
30
-
-
70350057617
-
Quality control of cytoplasmic membrane proteins in Escherichia coli
-
Akiyama Y (2009) Quality control of cytoplasmic membrane proteins in Escherichia coli. J Biochem 146(4):449-454
-
(2009)
J Biochem
, vol.146
, Issue.4
, pp. 449-454
-
-
Akiyama, Y.1
-
32
-
-
39149115737
-
Membrane lipid homeostasis in bacteria
-
Zhang YM, Rock CO (2008) Membrane lipid homeostasis in bacteria. Nat Rev Microbiol 6(3):222-233
-
(2008)
Nat Rev Microbiol
, vol.6
, Issue.3
, pp. 222-233
-
-
Zhang, Y.M.1
Rock, C.O.2
-
33
-
-
0027304442
-
UDP-N-acetylglucosamine acyltransferase of Escherichia coli. The first step of endotoxin biosynthesis is thermodynamically unfavorable
-
Anderson MS, Bull HG, Galloway SM, Kelly TM et al (1993) UDP-N-acetylglucosamine acyltransferase of Escherichia coli. The first step of endotoxin biosynthesis is thermodynamically unfavorable. J Biol Chem 268(26):19858-19865
-
(1993)
J Biol Chem
, vol.268
, Issue.26
, pp. 19858-19865
-
-
Anderson, M.S.1
Bull, H.G.2
Galloway, S.M.3
Kelly, T.M.4
-
34
-
-
0016627718
-
Isolation and characterization of a new temperature-sensitive cell division mutant of Escherichia coli K-12
-
Santos D, De Almeida DF (1975) Isolation and characterization of a new temperature-sensitive cell division mutant of Escherichia coli K-12. J Bacteriol 124(3):1502-1507
-
(1975)
J Bacteriol
, vol.124
, Issue.3
, pp. 1502-1507
-
-
Santos, D.1
De Almeida, D.F.2
-
35
-
-
0026544881
-
Escherichia coli mutant Y16 is a double mutant carrying thermosensitive ftsH and ftsI mutations
-
Begg KJ, Tomoyasu T, Donachie WD, Khattar M et al (1992) Escherichia coli mutant Y16 is a double mutant carrying thermosensitive ftsH and ftsI mutations. J Bacteriol 174(7):2416-2417
-
(1992)
J Bacteriol
, vol.174
, Issue.7
, pp. 2416-2417
-
-
Begg, K.J.1
Tomoyasu, T.2
Donachie, W.D.3
Khattar, M.4
-
36
-
-
0029896059
-
The tolZ gene of Escherichia coli is identi fied as the ftsH gene
-
Qu JN, Makino SI, Adachi H, Koyama Y et al (1996) The tolZ gene of Escherichia coli is identi fied as the ftsH gene. J Bacteriol 178(12):3457-3461
-
(1996)
J Bacteriol
, vol.178
, Issue.12
, pp. 3457-3461
-
-
Qu, J.N.1
Makino, S.I.2
Adachi, H.3
Koyama, Y.4
-
37
-
-
0345523771
-
Balanced biosynthesis of major membrane components through regulated degradation of the committed enzyme of lipid A biosynthesis by the AAA protease FtsH (H fl B) in Escherichia coli
-
Ogura T, Inoue K, Tatsuta T, Suzaki T et al (1999) Balanced biosynthesis of major membrane components through regulated degradation of the committed enzyme of lipid A biosynthesis by the AAA protease FtsH (H fl B) in Escherichia coli. Mol Microbiol 31(3):833-844
-
(1999)
Mol Microbiol
, vol.31
, Issue.3
, pp. 833-844
-
-
Ogura, T.1
Inoue, K.2
Tatsuta, T.3
Suzaki, T.4
-
38
-
-
33645085050
-
The C-terminal end of LpxC is required for degradation by the FtsH protease
-
Fuhrer F, Langklotz S, Narberhaus F (2006) The C-terminal end of LpxC is required for degradation by the FtsH protease. Mol Microbiol 59(3):1025-1036
-
(2006)
Mol Microbiol
, vol.59
, Issue.3
, pp. 1025-1036
-
-
Fuhrer, F.1
Langklotz, S.2
Narberhaus, F.3
-
39
-
-
34547938709
-
Sequence and length recognition of the C-terminal turnover element of LpxC, a soluble substrate of the membrane-bound FtsH protease
-
Fuhrer F, Muller A, Baumann H, Langklotz S et al (2007) Sequence and length recognition of the C-terminal turnover element of LpxC, a soluble substrate of the membrane-bound FtsH protease. J Mol Biol 372(2):485-496
-
(2007)
J Mol Biol
, vol.372
, Issue.2
, pp. 485-496
-
-
Fuhrer, F.1
Muller, A.2
Baumann, H.3
Langklotz, S.4
-
40
-
-
79951634603
-
Control of lipopolysaccharide biosynthesis by FtsH-mediated proteolysis of LpxC is conserved in enterobacteria but not in all gramnegative bacteria
-
Langklotz S, Schakermann M, Narberhaus F (2011) Control of lipopolysaccharide biosynthesis by FtsH-mediated proteolysis of LpxC is conserved in enterobacteria but not in all gramnegative bacteria. J Bacteriol 193(5):1090-1097
-
(2011)
J Bacteriol
, vol.193
, Issue.5
, pp. 1090-1097
-
-
Langklotz, S.1
Schakermann, M.2
Narberhaus, F.3
-
41
-
-
55749093837
-
Dual role of FtsH in regulating lipopolysaccharide biosynthesis in Escherichia coli
-
Katz C, Ron EZ (2008) Dual role of FtsH in regulating lipopolysaccharide biosynthesis in Escherichia coli. J Bacteriol 190(21):7117-7122
-
(2008)
J Bacteriol
, vol.190
, Issue.21
, pp. 7117-7122
-
-
Katz, C.1
Ron, E.Z.2
-
42
-
-
80055087830
-
Whole-exome sequencing identi fies homozygous AFG3L2 mutations in a spastic ataxia-neuropathy syndrome linked to mitochondrial m-AAA proteases
-
Pierson TM, Adams D, Bonn F, Martinelli P et al (2011) Whole-exome sequencing identi fies homozygous AFG3L2 mutations in a spastic ataxia-neuropathy syndrome linked to mitochondrial m-AAA proteases. PLoS Genet 7(10):e1002325
-
(2011)
PLoS Genet
, vol.7
, Issue.10
-
-
Pierson, T.M.1
Adams, D.2
Bonn, F.3
Martinelli, P.4
-
43
-
-
67449138848
-
Ups1p and Ups2p antagonistically regulate cardiolipin metabolism in mitochondria
-
Tamura Y, Endo T, Iijima M, Sesaki H (2009) Ups1p and Ups2p antagonistically regulate cardiolipin metabolism in mitochondria. J Cell Biol 185(6):1029-1045
-
(2009)
J Cell Biol
, vol.185
, Issue.6
, pp. 1029-1045
-
-
Tamura, Y.1
Endo, T.2
Iijima, M.3
Sesaki, H.4
-
44
-
-
77956391459
-
Regulation of mitochondrial phospholipids by Ups1/PRELI-like proteins depends on proteolysis and Mdm35
-
Potting C, Wilmes C, Engmann T, Osman C et al (2010) Regulation of mitochondrial phospholipids by Ups1/PRELI-like proteins depends on proteolysis and Mdm35. EMBO J 29(17):2888-2898
-
(2010)
EMBO J
, vol.29
, Issue.17
, pp. 2888-2898
-
-
Potting, C.1
Wilmes, C.2
Engmann, T.3
Osman, C.4
-
45
-
-
61449229779
-
The genetic interactome of prohibitins: Coordinated control of cardiolipin and phosphatidylethanolamine by conserved regulators in mitochondria
-
Osman C, Haag M, Potting C, Rodenfels J et al (2009) The genetic interactome of prohibitins: coordinated control of cardiolipin and phosphatidylethanolamine by conserved regulators in mitochondria. J Cell Biol 184(4):583-596
-
(2009)
J Cell Biol
, vol.184
, Issue.4
, pp. 583-596
-
-
Osman, C.1
Haag, M.2
Potting, C.3
Rodenfels, J.4
-
46
-
-
77956378766
-
Mdm35p imports Ups proteins into the mitochondrial intermembrane space by functional complex formation
-
Tamura Y, Iijima M, Sesaki H (2010) Mdm35p imports Ups proteins into the mitochondrial intermembrane space by functional complex formation. EMBO J 29(17):2875-2887
-
(2010)
EMBO J
, vol.29
, Issue.17
, pp. 2875-2887
-
-
Tamura, Y.1
Iijima, M.2
Sesaki, H.3
-
47
-
-
0344211512
-
Lack of a robust unfoldase activity confers a unique level of substrate speci ficity to the universal AAA protease FtsH
-
Herman C, Prakash S, Lu CZ, Matouschek A et al (2003) Lack of a robust unfoldase activity confers a unique level of substrate speci ficity to the universal AAA protease FtsH. Mol Cell 11(3):659-669
-
(2003)
Mol Cell
, vol.11
, Issue.3
, pp. 659-669
-
-
Herman, C.1
Prakash, S.2
Lu, C.Z.3
Matouschek, A.4
-
48
-
-
67650541843
-
ATP-dependent proteases differ substantially in their ability to unfold globular proteins
-
Koodathingal P, Jaffe NE, Kraut DA, Prakash S et al (2009) ATP-dependent proteases differ substantially in their ability to unfold globular proteins. J Biol Chem 284(28):18674-18684
-
(2009)
J Biol Chem
, vol.284
, Issue.28
, pp. 18674-18684
-
-
Koodathingal, P.1
Jaffe, N.E.2
Kraut, D.A.3
Prakash, S.4
-
49
-
-
33947368999
-
Colicin biology
-
Cascales E, Buchanan SK, Duche D, Kleanthous C et al (2007) Colicin biology. Microbiol Mol Biol Rev 71(1):158-229
-
(2007)
Microbiol Mol Biol Rev
, vol.71
, Issue.1
, pp. 158-229
-
-
Cascales, E.1
Buchanan, S.K.2
Duche, D.3
Kleanthous, C.4
-
50
-
-
78449293752
-
Swimming against the tide: Progress and challenges in our understanding of colicin translocation
-
Kleanthous C (2010) Swimming against the tide: progress and challenges in our understanding of colicin translocation. Nat Rev Microbiol 8(12):843-848
-
(2010)
Nat Rev Microbiol
, vol.8
, Issue.12
, pp. 843-848
-
-
Kleanthous, C.1
-
51
-
-
35748954062
-
The role of electrostatics in colicin nuclease domain translocation into bacterial cells
-
Walker D, Mosbahi K, Vankemmelbeke M, James R et al (2007) The role of electrostatics in colicin nuclease domain translocation into bacterial cells. J Biol Chem 282(43):31389-31397
-
(2007)
J Biol Chem
, vol.282
, Issue.43
, pp. 31389-31397
-
-
Walker, D.1
Mosbahi, K.2
Vankemmelbeke, M.3
James, R.4
-
52
-
-
80051681504
-
FtsH-dependent processing of RNase colicins D and E3 means that only the cytotoxic domains are imported into the cytoplasm
-
Chauleau M, Mora L, Serba J, de Zamaroczy M (2011) FtsH-dependent processing of RNase colicins D and E3 means that only the cytotoxic domains are imported into the cytoplasm. J Biol Chem 286(33):29397-29407
-
(2011)
J Biol Chem
, vol.286
, Issue.33
, pp. 29397-29407
-
-
Chauleau, M.1
Mora, L.2
Serba, J.3
de Zamaroczy, M.4
-
53
-
-
0033533381
-
Self-processing of FtsH and its implication for the cleavage speci ficity of this protease
-
Akiyama Y (1999) Self-processing of FtsH and its implication for the cleavage speci ficity of this protease. Biochemistry 38(36):11693-11699
-
(1999)
Biochemistry
, vol.38
, Issue.36
, pp. 11693-11699
-
-
Akiyama, Y.1
-
54
-
-
84897472990
-
The role of AAA+ proteases in mitochondrial protein biogensis, homeostasis and activity control
-
Dougan DA (ed) Springer, Subcell Biochem
-
Voos W, Ward LA, Truscott KN (2013) The role of AAA+ proteases in mitochondrial protein biogensis, homeostasis and activity control. In: Dougan DA (ed) Regulated proteolysis in microorganisms. Springer, Subcell Biochem 66:223-263
-
(2013)
Regulated proteolysis in microorganisms
, vol.66
, pp. 223-263
-
-
Voos, W.1
Ward, L.A.2
Truscott, K.N.3
-
55
-
-
33645757318
-
An AAA protease FtsH can initiate proteolysis from internal sites of a model substrate, apo- flavodoxin
-
Okuno T, Yamanaka K, Ogura T (2006) An AAA protease FtsH can initiate proteolysis from internal sites of a model substrate, apo- flavodoxin. Genes Cells 11(3):261-268
-
(2006)
Genes Cells
, vol.11
, Issue.3
, pp. 261-268
-
-
Okuno, T.1
Yamanaka, K.2
Ogura, T.3
-
56
-
-
77953720996
-
FtsH cleavage of non-native conformations of proteins
-
Ayuso-Tejedor S, Nishikori S, Okuno T, Ogura T et al (2010) FtsH cleavage of non-native conformations of proteins. J Struct Biol 171(2):117-124
-
(2010)
J Struct Biol
, vol.171
, Issue.2
, pp. 117-124
-
-
Ayuso-Tejedor, S.1
Nishikori, S.2
Okuno, T.3
Ogura, T.4
-
57
-
-
34250369119
-
Protein degradation within mitochondria: Versatile activities of AAA proteases and other peptidases
-
Koppen M, Langer T (2007) Protein degradation within mitochondria: versatile activities of AAA proteases and other peptidases. Crit Rev Biochem Mol Biol 42(3):221-242
-
(2007)
Crit Rev Biochem Mol Biol
, vol.42
, Issue.3
, pp. 221-242
-
-
Koppen, M.1
Langer, T.2
-
58
-
-
71749119260
-
Emerging roles of mitochondrial proteases in neurodegeneration
-
Martinelli P, Rugarli EI (2010) Emerging roles of mitochondrial proteases in neurodegeneration. Biochim Biophys Acta 1797(1):1-10
-
(2010)
Biochim Biophys Acta
, vol.1797
, Issue.1
, pp. 1-10
-
-
Martinelli, P.1
Rugarli, E.I.2
-
59
-
-
79960047807
-
Presequence-dependent folding ensures MrpL32 processing by the m-AAA protease in mitochondria
-
Bonn F, Tatsuta T, Petrungaro C, Riemer J et al (2011) Presequence-dependent folding ensures MrpL32 processing by the m-AAA protease in mitochondria. EMBO J 30(13):2545-2556
-
(2011)
EMBO J
, vol.30
, Issue.13
, pp. 2545-2556
-
-
Bonn, F.1
Tatsuta, T.2
Petrungaro, C.3
Riemer, J.4
-
60
-
-
70350230142
-
Autocatalytic processing of m-AAA protease subunits in mitochondria
-
Koppen M, Bonn F, Ehses S, Langer T (2009) Autocatalytic processing of m-AAA protease subunits in mitochondria. Mol Biol Cell 20(19):4216-4224
-
(2009)
Mol Biol Cell
, vol.20
, Issue.19
, pp. 4216-4224
-
-
Koppen, M.1
Bonn, F.2
Ehses, S.3
Langer, T.4
-
61
-
-
77950298030
-
Mutations in the mitochondrial protease gene AFG3L2 cause dominant hereditary ataxia SCA28
-
Di Bella D, Lazzaro F, Brusco A, Plumari M et al (2010) Mutations in the mitochondrial protease gene AFG3L2 cause dominant hereditary ataxia SCA28. Nat Genet 42(4):313-321
-
(2010)
Nat Genet
, vol.42
, Issue.4
, pp. 313-321
-
-
Di Bella, D.1
Lazzaro, F.2
Brusco, A.3
Plumari, M.4
-
62
-
-
0032511186
-
Spastic paraplegia and OXPHOS impairment caused by mutations in paraplegin, a nuclear-encoded mitochondrial metalloprotease
-
Casari G, De Fusco M, Ciarmatori S, Zeviani M et al (1998) Spastic paraplegia and OXPHOS impairment caused by mutations in paraplegin, a nuclear-encoded mitochondrial metalloprotease. Cell 93(6):973-983
-
(1998)
Cell
, vol.93
, Issue.6
, pp. 973-983
-
-
Casari, G.1
De Fusco, M.2
Ciarmatori, S.3
Zeviani, M.4
-
63
-
-
33846490396
-
m-AAA protease-driven membrane dislocation allows intramembrane cleavage by rhomboid in mitochondria
-
Tatsuta T, Augustin S, Nolden M, Friedrichs B (2007) m-AAA protease-driven membrane dislocation allows intramembrane cleavage by rhomboid in mitochondria. EMBO J 26(2):325-335
-
(2007)
EMBO J
, vol.26
, Issue.2
, pp. 325-335
-
-
Tatsuta, T.1
Augustin, S.2
Nolden, M.3
Friedrichs, B.4
-
64
-
-
76149140917
-
Regulation of OPA1 processing and mitochondrial fusion by m-AAA protease isoenzymes and OMA1
-
Ehses S, Raschke I, Mancuso G, Bernacchia A et al (2009) Regulation of OPA1 processing and mitochondrial fusion by m-AAA protease isoenzymes and OMA1. J Cell Biol 187(7):1023-1036
-
(2009)
J Cell Biol
, vol.187
, Issue.7
, pp. 1023-1036
-
-
Ehses, S.1
Raschke, I.2
Mancuso, G.3
Bernacchia, A.4
-
65
-
-
33746299692
-
Regulation of mitochondrial morphology through proteolytic cleavage of OPA1
-
Ishihara N, Fujita Y, Oka T, Mihara K (2006) Regulation of mitochondrial morphology through proteolytic cleavage of OPA1. EMBO J 25(13):2966-2977
-
(2006)
EMBO J
, vol.25
, Issue.13
, pp. 2966-2977
-
-
Ishihara, N.1
Fujita, Y.2
Oka, T.3
Mihara, K.4
-
67
-
-
83855165110
-
Should we stay or should we go: Mechanisms and ecological consequences for bio film dispersal
-
McDougald D, Rice SA, Barraud N, Steinberg PD et al (2012) Should we stay or should we go: mechanisms and ecological consequences for bio film dispersal. Nat Rev Microbiol 10(1):39-50
-
(2012)
Nat Rev Microbiol
, vol.10
, Issue.1
, pp. 39-50
-
-
McDougald, D.1
Rice, S.A.2
Barraud, N.3
Steinberg, P.D.4
-
68
-
-
84858281914
-
Inactivation of the ftsH gene of Lactobacillus plantarum WCFS1: Effects on growth, stress tolerance, cell surface properties and bio film formation
-
Bove P, Capozzi V, Garofalo C, Rieu A et al (2012) Inactivation of the ftsH gene of Lactobacillus plantarum WCFS1: effects on growth, stress tolerance, cell surface properties and bio film formation. Microbiol Res 167(4):187-193
-
(2012)
Microbiol Res
, vol.167
, Issue.4
, pp. 187-193
-
-
Bove, P.1
Capozzi, V.2
Garofalo, C.3
Rieu, A.4
-
69
-
-
33750448990
-
Porphyromonas gingivalis genes involved in community development with Streptococcus gordonii
-
Simionato MR, Tucker CM, Kuboniwa M, Lamont G et al (2006) Porphyromonas gingivalis genes involved in community development with Streptococcus gordonii. Infect Immun 74(11):6419-6428
-
(2006)
Infect Immun
, vol.74
, Issue.11
, pp. 6419-6428
-
-
Simionato, M.R.1
Tucker, C.M.2
Kuboniwa, M.3
Lamont, G.4
-
70
-
-
0027364005
-
Cell growth and lambda phage development controlled by the same essential Escherichia coli gene, ftsH/h fl B
-
Herman C, Ogura T, Tomoyasu T, Hiraga S et al (1993) Cell growth and lambda phage development controlled by the same essential Escherichia coli gene, ftsH/h fl B. Proc Natl Acad Sci U S A 90(22):10861-10865
-
(1993)
Proc Natl Acad Sci U S A
, vol.90
, Issue.22
, pp. 10861-10865
-
-
Herman, C.1
Ogura, T.2
Tomoyasu, T.3
Hiraga, S.4
-
71
-
-
0031036515
-
The H fl B protease of Escherichia coli degrades its inhibitor lambda cIII
-
Herman C, Thevenet D, D'Ari R, Bouloc P (1997) The H fl B protease of Escherichia coli degrades its inhibitor lambda cIII. J Bacteriol 179(2):358-363
-
(1997)
J Bacteriol
, vol.179
, Issue.2
, pp. 358-363
-
-
Herman, C.1
Thevenet, D.2
D'Ari, R.3
Bouloc, P.4
-
72
-
-
34547929879
-
Phage lambda CIII: A protease inhibitor regulating the lysis-lysogeny decision
-
Kobiler O, Rokney A, Oppenheim AB (2007) Phage lambda CIII: a protease inhibitor regulating the lysis-lysogeny decision. PLoS One 2(4):e363
-
(2007)
PLoS One
, vol.2
, Issue.4
-
-
Kobiler, O.1
Rokney, A.2
Oppenheim, A.B.3
-
73
-
-
1642356725
-
FtsH exists as an exceptionally large complex containing H fl KC in the plasma membrane of Escherichia coli
-
Saikawa N, Akiyama Y, Ito K (2004) FtsH exists as an exceptionally large complex containing H fl KC in the plasma membrane of Escherichia coli. J Struct Biol 146(1-2):123-129
-
(2004)
J Struct Biol
, vol.146
, Issue.1-2
, pp. 123-129
-
-
Saikawa, N.1
Akiyama, Y.2
Ito, K.3
-
74
-
-
77956171847
-
Escherichia coli H fl K and H fl C can individually inhibit the H fl B (FtsH)-mediated proteolysis of lambdaCII in vitro
-
Bandyopadhyay K, Parua PK, Datta AB, Parrack P (2010) Escherichia coli H fl K and H fl C can individually inhibit the H fl B (FtsH)-mediated proteolysis of lambdaCII in vitro. Arch Biochem Biophys 501(2):239-243
-
(2010)
Arch Biochem Biophys
, vol.501
, Issue.2
, pp. 239-243
-
-
Bandyopadhyay, K.1
Parua, P.K.2
Datta, A.B.3
Parrack, P.4
-
75
-
-
0030914642
-
Host regulation of lysogenic decision in bacteriophage lambda: Transmembrane modulation of FtsH (H fl B), the cII degrading protease, by H fl KC (H fl A)
-
Kihara A, Akiyama Y, Ito K (1997) Host regulation of lysogenic decision in bacteriophage lambda: transmembrane modulation of FtsH (H fl B), the cII degrading protease, by H fl KC (H fl A). Proc Natl Acad Sci U S A 94(11):5544-5549
-
(1997)
Proc Natl Acad Sci U S A
, vol.94
, Issue.11
, pp. 5544-5549
-
-
Kihara, A.1
Akiyama, Y.2
Ito, K.3
-
76
-
-
0032577263
-
Different pathways for protein degradation by the FtsH/ H fl KC membrane-embedded protease complex: An implication from the interference by a mutant form of a new substrate protein, YccA
-
Kihara A, Akiyama Y, Ito K (1998) Different pathways for protein degradation by the FtsH/ H fl KC membrane-embedded protease complex: an implication from the interference by a mutant form of a new substrate protein, YccA. J Mol Biol 279(1):175-188
-
(1998)
J Mol Biol
, vol.279
, Issue.1
, pp. 175-188
-
-
Kihara, A.1
Akiyama, Y.2
Ito, K.3
-
78
-
-
56349102165
-
Prohibitin function within mitochondria: Essential roles for cell proliferation and cristae morphogenesis
-
Merkwirth C, Langer T (2009) Prohibitin function within mitochondria: essential roles for cell proliferation and cristae morphogenesis. Biochim Biophys Acta 1793(1):27-32
-
(2009)
Biochim Biophys Acta
, vol.1793
, Issue.1
, pp. 27-32
-
-
Merkwirth, C.1
Langer, T.2
-
79
-
-
70450265196
-
Prohibitins and the functional compartmentalization of mitochondrial membranes
-
Osman C, Merkwirth C, Langer T (2009) Prohibitins and the functional compartmentalization of mitochondrial membranes. J Cell Sci 122(Pt 21):3823-3830
-
(2009)
J Cell Sci
, vol.122
, pp. 3823-3830
-
-
Osman, C.1
Merkwirth, C.2
Langer, T.3
-
80
-
-
77951246247
-
Identi fication and characterization of high molecular weight complexes formed by matrix AAA proteases and prohibitins in mitochondria of Arabidopsis thaliana
-
Piechota J, Kolodziejczak M, Juszczak I, Sakamoto W et al (2010) Identi fication and characterization of high molecular weight complexes formed by matrix AAA proteases and prohibitins in mitochondria of Arabidopsis thaliana. J Biol Chem 285(17):12512-12521
-
(2010)
J Biol Chem
, vol.285
, Issue.17
, pp. 12512-12521
-
-
Piechota, J.1
Kolodziejczak, M.2
Juszczak, I.3
Sakamoto, W.4
|